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Titlebook: Cognitive Science and Artificial Intelligence; Advances and Applica Sasikumar Gurumoorthy,Bangole Narendra Kumar Rao,X Book 2018 The Author

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EEG Based Emotion Recognition Using Wavelets and Neural Networks Classifier, of human computer interface applications. In this paper, machine learning methods are used to model a relationship using the publicly available dataset SEED (SJTU Emotion EEG Dataset) which contains EEG signals of 15 participants recorded when excited to video stimuli. The signal processing techniq
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2191-530X ng perspective. It includes chapters on Artificial Intelligence, Decision Support Systems, Machine Learning, Data Mining and Support Vector Machines, chiefly with regard to the data obtained and analyzed in Medical Informatics, Bioinformatics and related disciplines. The book reflects the state-of-t
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Book 2018ificial Intelligence, Decision Support Systems, Machine Learning, Data Mining and Support Vector Machines, chiefly with regard to the data obtained and analyzed in Medical Informatics, Bioinformatics and related disciplines. The book reflects the state-of-the-art in Artificial Intelligence and Cogni
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Ravindra Pogaku,Rosalam Hj. Sarbatlysize. Classification is done on three major classes’ namely class-1, class-2 and class-3 for obtaining global efficiency of 85.10% on the test set consisting about fifteen images of each cluster. A comparative study is performed on the results from the proposed model with existing models, state of the art models on tobacco leaf classification.
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https://doi.org/10.1007/978-1-4614-6249-1ffects the cotton yield using hybrid DEMATAL and FCM. No previous studies have integrated FCM and DEMANTAL for the prediction of cotton yield. Furthermore, evaluation results of this study reveal that the integration of DEMATAL-FCM could be effective and as well accurate compared to existing approaches for evaluating cotton yield prediction.
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